• Optics and Precision Engineering
  • Vol. 23, Issue 8, 2273 (2015)
ZHANG Cheng-jin1,2, ZHAO Xue-liang1,3,*, and LIU Hong-bo1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: 10.3788/ope.20152308.2273 Cite this Article
    ZHANG Cheng-jin, ZHAO Xue-liang, LIU Hong-bo. Compensation for dynamic creep of stack piezoelectric actuator[J]. Optics and Precision Engineering, 2015, 23(8): 2273 Copy Citation Text show less
    References

    [1] CHEN Y SH, QIU J H, JI H L, et al.. Modeling and inverse control of preisach type hysteresis nonlinearity using hyperbola functions [J]. Opt. Precision Eng., 2013,21(5): 1205-1212. (in chinese)

    [2] LI P ZH, YAN F, GE CH, et al.. Open closed loop iterative learning control of piezoelectric actuators [J]. Opt. Precision Eng., 2014, 22(2): 414-419. (in chinese)

    [3] WANG Y F, GUO Y X, MAO J Q. Rate dependent modeling and tracking control of piezoelectric actuators [J]. Opt. Precision Eng., 2014, 22(3): 616-625. (in chinese)

    [4] ZHANG G L, ZHANG CH J, ZHAO X L. Modeling of nonlocal memory hysteresis in piezoelectric actuators [J]. Opt. Precision Eng., 2012, 20(5): 996-1001. (in chinese)

    [5] XIAO SH L, LI Y M. Modeling and High Dynamic Compensating the Rate-Dependent Hysteresis of Piezoelectric Actuators via a Novel Modified Inverse Preisach Model [J]. IEEE T. Cont.r Syst. T., 2013, 22(5): 1549-1557.

    [6] JANOCHA H, KUHNEN K. Real-time compensation of hysteresis and creep in piezoelectric actuators [J]. Sensor. Actuat. A-Phys., 2000, 79(2): 83-89.

    [7] WOLF F, SUTOR A, RUPITSCH S J, et al.. Modeling and measurement of creep- and rate-dependent hysteresis in ferroelectric actuators [J]. Sensor. Actuat. A-Phys, 2011, 172(1): 245-252,.

    [8] JUNG H, GWEON D G. Creep characteristics of piezoelectric actuators[J]. Rev. Sci. Instrum., 2000, 71(4): 1896-1900.

    [9] RU CH H, SUN L N. Hysteresis and creep compensation for piezoelectric actuator in open-loop operation [J]. Sensor. Actuat. A-Phys., 2005, 122(1): 124-130.

    [10] MA Y T, HUANG L, LIU Y B, et al.. Note: creep character of piezoelectric actuator under switched capacitor charge pump control [J]. Rev. Sci. Instrum., 2011, 82(4): 046106.

    [11] ZHAO X L, ZHANG CH J, LIU H B, et al.. Analysis of Hysteresis-free creep of the stack piezoelectric actuator[J]. Math. Probl. Eng., 2013: 187262.

    [12] GU G Y, ZHU L M, SU CH Y. Modeling and compensation of asymmetric hysteresis nonlinearity for piezoceramic actuators with a modified prandtl ishlinskii model [J]. IEEE T Ind. Electron., 2014, 61(3): 1583-1595.

    [13] CLAYTON G M, TIEN S, LEANG K K, et al.. A review of feedforward control approaches in nanopositioning for high-speed SPM [J]. J. Dyn. Syst. –T ASME, 2009,131(6): 061101.

    [14] QIN Y D, TIAN Y L, ZHANG D W, et al.. A novel direct inverse modeling approach for hysteresis compensation of piezoelectric actuator in feedforward applications [J]. IEEE-ASME T. Mech., 2013, 18(3): 981-989.

    [15] CHOI G S, LIM Y A, CHOI G H. Tracking position control of piezoelectric actuators for periodic reference inputs [J]. Mechatronics, 2002, 12(5): 669-684.

    [16] TAN K K, LEE T H, ZHOU X H X. Micro-positioning of linear-piezoelectric motors based on a learning nonlinear PID controller [J]. IEEE-ASME T. Mech., 2001, 6(4): 428-436.

    [17] ZHAO X L, ZHANG CH J, GU J, et al.. creep characteristics of stack piezoactuator effected by discretized sine voltage [J]. Opt. Precision Eng., 2014,22(4): 942-948. (in chinese)

    CLP Journals

    [1] TAN Wei, HU Yongjiang, ZHANG Xiaomeng, ZHAO Yuefei1, LI Wenguang. Mission Planning of Relay UAV Based on Voronoi-Sparrow Search Algorithm[J]. Electronics Optics & Control, 2022, 29(7): 6

    [2] WANG Haifeng, FENG Xingwei, LI Qing, YANG Yi, PAN Zhifeng. Dynamic Hysteresis Modeling and Robust Control of Piezoelectric Micro-motion Rod[J]. Electronics Optics & Control, 2022, 29(7): 114

    ZHANG Cheng-jin, ZHAO Xue-liang, LIU Hong-bo. Compensation for dynamic creep of stack piezoelectric actuator[J]. Optics and Precision Engineering, 2015, 23(8): 2273
    Download Citation